Cosmology without window functions: Quadratic estimators for the galaxy power spectrum

O. Philcox
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引用次数: 23

Abstract

Conventional algorithms for galaxy power spectrum estimation measure the true spectrum convolved with a survey window function, which, for parameter inference, must be compared with a similarly convolved theory model. In this work, we directly estimate the unwindowed power spectrum multipoles using quadratic estimators akin to those introduced in the late 1990s. Under Gaussian assumptions, these are optimal and free from the leading-order effects of pixellization and non-Poissonian shot-noise. They may be straightforwardly computed given the survey data-set and a suite of simulations of known cosmology. We implement the pixel-based maximum-likelihood estimator and a simplification based on the FKP weighting scheme, both of which can be computed via FFTs and conjugate gradient descent methods. Furthermore, the estimators allow direct computation of spectrum coefficients in an arbitrary linear compression scheme, without needing to first bin the statistico. Applying the technique to a subset of the BOSS DR12 galaxies, we find that the pixel-based quadratic estimators give statistically consistent power spectra, compressed coefficients, and cosmological parameters to those obtained with the usual windowed approaches. Due to the sample's low number density and compact window function, the optimal weighting scheme gives little improvement over the simplified form; this may change for dense surveys or those focusing on primordial non-Gaussianity. The technique is shown to be efficient and robust, and shows significant potential for measuring the windowless power spectrum and bispectrum in the presence of weak non-Gaussianity.
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无窗函数的宇宙学:星系功率谱的二次估计
传统的星系功率谱估计算法测量的是与观测窗口函数卷积的真谱,为了进行参数推断,必须将其与相似卷积的理论模型进行比较。在这项工作中,我们使用类似于20世纪90年代末引入的二次估计器直接估计无窗功率谱多极。在高斯假设下,这些是最优的,并且不受像素化和非泊松弹噪声的影响。根据调查数据集和一套已知宇宙学的模拟,它们可以直接计算出来。我们实现了基于像素的最大似然估计和基于FKP加权方案的简化,两者都可以通过fft和共轭梯度下降法计算。此外,估计器允许在任意线性压缩方案中直接计算谱系数,而不需要首先对统计量进行处理。将该技术应用于BOSS DR12星系的一个子集,我们发现基于像素的二次估计与通常的窗口方法获得的功率谱、压缩系数和宇宙学参数在统计上是一致的。由于样本数量密度低,窗口函数紧凑,最优加权方案比简化形式改进不大;这可能会改变密集的调查或那些关注原始非高斯性。结果表明,该技术是有效的和鲁棒的,并显示出在弱非高斯性存在下测量无窗功率谱和双谱的巨大潜力。
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